TECHNICAL FIELD
[0001] This disclosure is generally directed to cooling systems. More specifically, this
disclosure is directed to a cryocooler having a variable-length inertance channel
for tuning the resonance of a pulse tube.
BACKGROUND
[0002] Cryocoolers are often used to cool various devices or systems. One type of cryocooler
includes a compressor that creates fluid flow into and out of a pulse tube. The pulse
tube is typically connected to a surge volume, often by an inertance channel. During
part of the thermodynamic cycle, fluid flows into the surge volume through the inertance
channel. During another part of the thermodynamic cycle, fluid flows out of the surge
volume through the inertance channel.
[0003] In order to optimize a cryocooler that uses a pulse tube, the inertance channel's
length and diameter are typically designed so that the resonance frequency of the
pulse tube matches the compressor's drive frequency. Often times, a resonant mode
of a larger system that uses the cryocooler lies at a harmonic of the compressor's
drive frequency, which can create problems. Because the behavior of a larger system
may not be known or predicted accurately ahead of time, it is often inevitable that
these problems arise. In some conventional systems, this is solved by retuning the
pulse tube, which involves redesigning the cryocooler's surge volume and inertance
channel. However, this often results in increased costs and delays.
[0004] US2009107150 relates to cryocoolers and refrigeration systems, and in particular relates to cryocoolers
and refrigeration systems that include pulse tubes, separate tubes having a non-circular
shape, which may be wrapped around at least part of the surge volume.
US2009107150 discloses an apparatus and a method according to the preamble of claims 1 and 12,
respectively.
JP2005037015 provides a pulse tube refrigerator requiring small occupied space and capable of
preventing generation of abnormal sounds.
SUMMARY
[0005] This disclosure provides a cryocooler having a variable-length inertance channel
for tuning the resonance of a pulse tube.
[0006] The present invention relates to an apparatus according to claim 1.
[0007] The present invention relates to a method according to claim 12.
[0008] Other technical features may be readily apparent to one skilled in the art from the
following figures, descriptions, and claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] For a more complete understanding of this disclosure and its features, reference
is now made to the following description, taken in conjunction with the accompanying
drawings, in which:
FIGURE 1 illustrates an example pulse tube cryocooler having a variable-length inertance
channel for tuning the resonance of a pulse tube in accordance with this disclosure;
FIGURE 2 illustrates an example Stirling/pulse tube cryocooler having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure;
FIGURES 3A and 3B illustrate an example surge tank of a cryocooler having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure;
FIGURES 4A and 4B illustrate an example system containing a cryocooler having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure; and
FIGURE 5 illustrates an example method for providing cooling in a system using a cryocooler
having a variable-length inertance channel for tuning the resonance of a pulse tube
in accordance with this disclosure.
DETAILED DESCRIPTION
[0010] FIGURES 1 through 5, described below, and the various embodiments used to describe
the principles of the present invention in this patent document are by way of illustration
only and should not be construed in any way to, which is solely limited by the appended
claims. Those skilled in the art will understand that the principles of the present
invention may be implemented in any type of suitably arranged pulse tube device or
system, including (but not limited to) a single-stage pulse tube cryocooler, a two-stage
pulse tube cryocooler, a two-stage Stirling/pulse tube hybrid cryocooler, or a three-stage
cryocooler having a Stirling first stage and pulse tube second and third stages.
[0011] FIGURE 1 illustrates an example pulse tube cryocooler 100 having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure. As shown in FIGURE 1, the cryocooler 100 here represents a single-stage
pulse tube cryocooler. In this embodiment, the cryocooler 100 includes a compressor
102 having a piston 104. The piston 104 strokes back and forth during each compression
cycle, and multiple compression cycles occur at a specified drive frequency. The compressor
102 includes any suitable structure for compressing at least one gas or other fluid(s)
used in a cooling system. The piston 104 includes any suitable structure configured
to repeatedly move back and forth in order to compress at least one fluid during multiple
compression cycles.
[0012] A cold head 106 is in fluid communication with the compressor 102. As the piston
104 moves to the right in FIGURE 1, fluid is pushed into the cold head 106, increasing
the pressure within the cold head 106. As the piston 104 moves to the left in FIGURE
1, fluid can exit the cold head 106, decreasing the pressure within the cold head
106. This back and forth motion of the fluid, along with controlled expansion and
contraction of the fluid, creates cooling in the cold head 106. In this example, the
fluid passes between a warm end 108 and a cold end 110. As the names imply, the warm
end 108 is at a higher temperature than the cold end 110. The cold head 106 can therefore,
for example, be thermally coupled to a device or system to be cooled.
[0013] The cryocooler 100 also includes a pulse tube 112 and a regenerator 114. The regenerator
114 represents a structure that contacts the fluid and exchanges heat with the fluid.
For example, when the fluid passes from the warm end 108 to the cold end 110, heat
from the fluid is absorbed by the regenerator 114 during half of the thermodynamic
cycle. When the fluid passes from the cold end 110 to the warm end 108, heat from
the regenerator 114 is absorbed by the fluid during the other half of the thermodynamic
cycle.
[0014] The cold head 106 includes any suitable structure for coupling to an external device
or system to be cooled. The pulse tube 112 represents any suitable structure through
which fluid can flow. The regenerator 114 includes any suitable structure for transferring
heat to and from fluid. The regenerator 114 could, for example, represent a porous
structure (such as a matrix of porous material or a metallic mesh) with a hole bored
through the structure. The entire structure could be formed from any suitable material(s),
have any suitable size, shape, and dimensions, and be fabricated in any suitable manner.
[0015] The pulse tube 112 is fluidly coupled to a surge tank 116. The surge tank 116 defines
a surge volume 118 that can store the fluid. An inertance channel 120 defines a path
through which the fluid in the pulse tube 112 can flow to reach the surge volume 118.
In this example, the inertance channel 120 includes a fixed-length portion 120a and
a variable-length portion 120b. The fixed-length portion 120a represents any suitable
structure supporting fluid flow, such as a small metal or other tubing. The variable-length
portion 120b represents an adjustable portion of the inertance channel 120 described
in more detail below. Note that the use of the fixed-length portion 120a of the inertance
channel 120 is optional. The surge tank 116 represents any suitable structure configured
to receive and retain fluid within a defined volume. The surge tank 116 is typically
sealed against the ambient environment to prevent venting of the fluid.
[0016] In this example, the variable-length portion 120b of the inertance channel 120 is
integrally formed within the surge tank 116. The variable-length portion 120b is formed
in the inner wall of the surge tank 116 and has an open side to the surge volume 118,
meaning the open side provides access to the surge volume 118. For example, the surge
volume 118 could represent a cylindrical space within the surge tank 116, and a spiral
portion 120b of the inertance channel 120 could be formed within the inner wall of
the surge tank 116. Note that the surge volume 118 could have any other suitable shape,
and the variable-length portion 120b of the inertance channel 120 could have any other
suitable pattern.
[0017] The inertance channel 120 represents a passageway through which fluid flows between
the pulse tube 112 and the surge volume 118. When fluid flows into the inertance channel
120 from the pulse tube 112, the fluid can follow the channel 120 until it eventually
reaches the surge volume 118. Similarly, when fluid flows into the inertance channel
120 from the surge volume 118, the fluid can follow the channel 120 until it eventually
reaches the pulse tube 112. As noted above, the length and diameter of an inertance
channel is typically designed so that the resonance frequency of a pulse tube matches
the drive frequency of a compressor. If a device or system incorporating the cryocooler
100 has a resonant mode that lies at a harmonic of the compressor's drive frequency,
this can create problems. Moreover, changing the length or diameter of an inertance
channel can be time consuming and expensive.
[0018] In accordance with this disclosure, the functional length of the inertance channel
120 can be altered using an adjustable seal 122. The "functional length" represents
the portion of the inertance channel 120 that fluid travels through before reaching
an outlet. The seal 122 is depressed against the inner wall of the surge tank 116,
thereby blocking the open side of the portion 120b. The seal 122 therefore helps to
prevent fluid in at least part of the inertance channel 120 (namely in the variable-length
portion 120b) from escaping the channel 120 until the fluid reaches a desired outlet
point. However, the seal 122 here is adjustable, meaning the seal 122 can be moved
to change the location of the channel's outlet. For instance, in the example shown
in FIGURE 1, the seal 122 could be moved up and down. When at its lowest position
in FIGURE 1, fluid from the pulse tube 112 may flow through substantially the entire
length of the channel 120 before exiting into the surge volume 118. When the seal
122 is raised upward, fluid from the pulse tube 112 may exit the channel 120 sooner
since the seal 122 no longer covers the open side along the entire length of the channel
120. Instead, the open side of part of the channel 120 becomes exposed, so the fluid
can exit the channel earlier, thereby effectively shortening the functional length
of the inertance channel 120.
[0019] The seal 122 represents any suitable structure for sealing an open portion of an
inertance channel. The seal 122 could, for example, represent a cylindrical sealing
can. Any suitable type of seal 122 could be used here. For example, in some embodiments,
a housing of the surge tank 116 is formed from material(s) having a high coefficient
of thermal expansion (CTE), while the seal 122 is formed from material(s) having a
low coefficient of thermal expansion. When the cryocooler 100 is warm (such as above
ambient temperature), the seal 122 can be moved into a desired position. When the
cryocooler 100 is cooled to at least a threshold temperature (such as room temperature),
the different coefficients of thermal expansion cause the seal 122 to block the open
side of at least part of the channel 120. To change the length of the inertance channel
120, the cryocooler 100 is warmed up again (such as above ambient temperature), and
the seal 122 is moved up to shorten the inertance channel 120 or down to lengthen
the inertance channel 120. In these embodiments, the position of the seal 122 can
be adjusted without venting the fluid within the cryocooler 100 and while the cryocooler
100 is fully integrated into a larger device or system. The seal 122 could be moved
manually (such as by rotating one or more knobs) or automatically (such as with a
motor-driven actuator). If driven by a motor, the adjustment could be performed remotely.
[0020] In this way, the length of the inertance channel 120 is adjustable by altering the
position of the seal 122. This allows the operating frequency of the cryocooler 100
to be adjusted without requiring a redesign of the cryocooler's surge volume and inertance
channel. For example, when the resonant mode of a larger system lies at a harmonic
of the compressor's drive frequency, the compressor's drive frequency can be altered,
and the seal 122 can be adjusted to alter the resonance frequency of the pulse tube
112 to match the compressor's new drive frequency. This can be done quickly without
venting the cooling fluid and without changing the structural design of the cryocooler
100. Moreover, the seal 122 can be said to have "infinite variability," meaning the
seal 122 could be placed in any position between its extreme positions and is not
limited to a specified step size between positions. This allows fine adjustments to
the resonance frequency of the pulse tube 112.
[0021] Note that the use of different coefficients of thermal expansion represents one way
that the seal 122 can block the open side of the inertance channel 120. Any other
suitable technique could also be used. For instance, the seal 122 could be mechanically
wedged up against the inner wall of the surge tank 116 to block the open side of the
channel 120. This disclosure is not limited to any particular sealing technique.
[0022] Although FIGURE 1 illustrates one example of a pulse tube cryocooler 100 having a
variable-length inertance channel for tuning the resonance of a pulse tube, various
changes may be made to FIGURE 1. For example, the illustrated size and shape of each
component and the relative sizes and shapes of multiple components are for illustration
only. Components in the cryocooler 100 can have any suitable size and shape. Also,
the layout and arrangement of the components are for illustration only. The components
in the cryocooler 100 could have any other suitable layout and arrangement. In addition,
the use of the fixed-length portion 120a of the inertance channel 120 is optional,
and other connecting mechanisms could be used to fluidly couple a pulse tube and a
variable-length inertance channel.
[0023] FIGURE 2 illustrates an example Stirling/pulse tube cryocooler 200 having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure. As shown in FIGURE 2, the cryocooler 200 here represents a two-stage Stirling-cycle
pulse tube cryocooler. In this embodiment, the cryocooler 200 includes a compressor
202 having a piston 204. The cryocooler 200 also includes a cold head 206, a pulse
tube 212, and a regenerator 214. The pulse tube 212 is fluidly coupled to a surge
tank 216, which defines a surge volume 218, by an inertance channel 220. The inertance
channel 220 here includes a fixed-length portion 220a and a variable-length portion
220b. The variable-length portion 220b of the inertance channel 220 is integrally
formed within the surge tank 216, such as along the inner wall of the surge tank 216.
An adjustable seal 222 can be used to alter the functional length of the inertance
channel 220. The components 202-222 shown here can be the same as or similar to the
corresponding components 102-122 in FIGURE 1.
[0024] In this example, the pulse tube 212 is used in the second stage of the cryocooler
200. The first stage of the cryocooler 200 is formed by a Stirling cooler 224 that
includes a passage 226 and a regenerator 228. The first stage operates to cool the
fluid before the fluid reaches the second stage, and the second stage operates to
cool the fluid even more. Here, the compressor 202 provides the fluid to the passage
226, causing the fluid to move back and forth within the passage 226 and the pulse
tube 212. When the fluid passes from the compressor 202 to the cold head 206, heat
from the fluid is absorbed by the regenerators 228 and 214. When the fluid passes
from the cold head 206 to the compressor 202, heat from the regenerators 228 and 214
is absorbed by the fluid.
[0025] The first stage of the cryocooler 200 includes any suitable structure for holding
a fluid that moves back and forth during multiple cycles. The first stage of the cryocooler
200 could be formed from any suitable material(s), have any suitable size, shape,
and dimensions, and be fabricated in any suitable manner. The regenerator 228 includes
any suitable porous structure for transferring heat to and from at least one fluid
in a tube. The regenerator 228 could, for example, represent a matrix of porous material
or a metallic mesh.
[0026] As with the cryocooler 100, the operation of the cryocooler 200 can be altered using
the adjustable seal 222 to change the functional length of the inertance channel 220.
When the seal 222 is at its lowest position, fluid from the pulse tube 212 may flow
through the entire length of the channel 220 before exiting into the surge volume
218. When the seal 222 is raised upward, fluid from the pulse tube 212 may exit the
channel 220 sooner since the seal 222 no longer covers the open side along the entire
length of the channel 220. Instead, the open side of part of the channel 220 becomes
exposed, so the fluid can exit the channel earlier, thereby effectively shortening
the functional length of the inertance channel 220.
[0027] Note that any suitable type of sealing mechanism could be used here, such as different
coefficients of thermal expansion or mechanical wedges. If different CTEs are used,
when the cryocooler 200 is warm (such as at ambient temperature), the seal 222 can
be moved into a desired position. When the cryocooler 200 is cooled to at least a
threshold temperature (such as sub-ambient temperature), the different coefficients
of thermal expansion cause the seal 222 to block the open side of at least part of
the channel 220. To change the length of the inertance channel 220, the cryocooler
200 is warmed up again (such as to ambient temperature), and the seal 222 is moved
up to shorten the inertance channel 220 or down to lengthen the inertance channel
220. Again, the position of the seal 222 can be adjusted without venting the fluid
within the cryocooler 200 and while the cryocooler 200 is fully integrated into a
larger device or system, and the seal 222 could be moved manually or automatically.
[0028] Also note that the surge volumes and inertance channels are used at different temperatures
in FIGURES 1 and 2. In FIGURE 1, the surge volume 118 receives fluid from the warm
end, so the fluid in the surge volume 118 is closer to ambient temperature. In FIGURE
2, the surge volume 218 receives fluid that has already been cooled by the Stirling
cooler 224, so the fluid in the surge volume 218 can be at sub-ambient, possibly even
cryogenic, temperatures.
[0029] Although FIGURE 2 illustrates one example of a Stirling/pulse tube cryocooler having
a variable-length inertance channel for tuning the resonance of a pulse tube, various
changes may be made to FIGURE 2. For example, the illustrated size and shape of each
component and the relative sizes and shapes of multiple components are for illustration
only. Components in the cryocooler 200 can have any suitable size and shape. Also,
the layout and arrangement of the components are for illustration only. The components
in the cryocooler 200 could have any other suitable layout and arrangement. Further,
the use of the fixed-length portion 220a of the inertance channel 220 is optional,
and other connecting mechanisms could be used to fluidly couple a pulse tube and a
variable-length inertance channel. In addition, a variable-length inertance channel
could be used in a cooling system with any suitable number and types of stages. For
instance, a variable-length inertance channel could be used in a single-stage pulse
tube cryocooler, a two-stage pulse tube cryocooler, a two-stage Stirling/pulse tube
hybrid cryocooler, or a three-stage cryocooler having a Stirling first stage and pulse
tube second and third stages.
[0030] FIGURES 3A and 3B illustrate an example surge tank 300 of a cryocooler having a variable-length
inertance channel for tuning the resonance of a pulse tube in accordance with this
disclosure. This embodiment of the surge tank 300 is for illustration only. Other
surge tanks could be used in the cryocoolers described above, and the surge tank 300
could be used in other cryocoolers.
[0031] As shown in FIGURES 3A and 3B, the surge tank 300 here includes a generally cylindrical
housing 302 with a hollow central section 304. The hollow central section 304 could,
for example, allow part of a pulse tube to fit through the surge tank 300. This can
help to reduce the space needed for a cryocooler, although surge tanks having housings
with other shapes could also be used. The housing 302 includes any suitable structure
for forming a surge volume for a cryocooler. The housing 302 could also be formed
from any suitable material(s) and in any suitable manner.
[0032] The surge tank 300 also includes a lid 306, which is sealed to the housing 302. The
lid 306 can be secured to the housing 302 after cooling fluid and other components
have been placed within an interior space of the housing 302. The lid 306 could have
any suitable size and shape depending on the size and shape of the housing 302. The
lid 306 could also be formed from any suitable material(s) and in any suitable manner.
One or more adjusters 308 could be used to adjust the functional length of an inertance
channel as described below. Each adjuster 308 includes any suitable structure for
adjusting an inertance channel.
[0033] As shown in FIGURE 3B, the housing 302 defines a surge volume 310 into which fluid
associated with a pulse tube can enter and exit. The surge volume 310 could have any
suitable volume and three-dimensional shape depending on the implementation. The housing
302 also has an integral inertance channel 312 defined along the inner wall of the
housing 302, as well as an inlet 314 to the inertance channel 312. The inertance channel
312 could have any suitable size, shape, and pattern. In particular embodiments, the
inertance channel 312 represents a rectangular-shaped spiral channel, similar to an
internal thread with rounded corners. Also, the inertance channel 312 could represent
the entire length of an inertance channel or only a portion of the total length of
the inertance channel.
[0034] An adjustable seal 316 resides within the surge volume 310, and the adjustable seal
316 seals the open side of at least part of the inertance channel 312. The seal 316
can also be raised and lowered within the surge volume 310 using the adjusters 308.
For example, the adjusters 308 could be threaded and engage with threaded recesses
of the seal 316. The seal 316 represents any suitable structure for sealing an open
side of an inertance channel, such as a sealing can. Any suitable technique could
be used to seal an inertance channel using the seal 316, such as different coefficients
of thermal expansion or a mechanical wedge. When different coefficients of thermal
expansion are used, the housing 302 could be formed from stainless steel or aluminum,
while the adjustable seal 316 could be formed from FeNi
36 (sold under the name INVAR).
[0035] Flexible seals 318 between the lid 306 and the adjustable seal 316 prevent fluid
from escaping from the surge volume 310 through openings in the lid 306 where the
adjusters 308 are located. The seals 318 are flexible to provide this protection even
as the position of the adjustable seal 316 is altered. Each flexible seal 318 includes
any suitable seal for preventing leakage of fluid.
[0036] The surge tank 300 can operate as described above. For example, when different coefficients
of thermal expansion are used, the adjusters 308 could be used to position the seal
316 when a cryocooler is at or above ambient temperature. When the cryocooler is placed
into operation or is otherwise cooled, the lower temperature causes the seal 316 to
block the open side of at least part of the channel 312, thereby sealing the inertance
channel 312 and giving the channel 312 a specified length. If needed, the temperature
of the cryocooler can be increased, the adjusters 308 can be used to reposition the
seal 316, and the cryocooler can be placed back into operation. In this way, the length
of the inertance channel 312 can be adjusted to tune the resonance of a pulse tube.
[0037] Although FIGURES 3A and 3B illustrate one example of a surge tank 300 of a cryocooler
having a variable-length inertance channel for tuning the resonance of a pulse tube,
various changes may be made to FIGURES 3A and 3B. For example, as noted above, the
size, shape, and dimensions of the various components in the surge tank 300 could
be altered according to particular needs. Also, any other suitable technique could
be used for altering the position of the seal 316 within the surge volume 310.
[0038] FIGURES 4A and 4B illustrate an example system 400 containing a cryocooler having
a variable-length inertance channel for tuning the resonance of a pulse tube in accordance
with this disclosure. As shown in FIGURES 4A and 4B, a compressor 402 is fluidly coupled
to an expander 404. The form of the compressor 402 shown here is for illustration
only, and any suitable compressor could be used in the system 400. The expander 404
represents part of a first stage 406 of a two-stage cooling system. A second stage
408 of the cooling system includes a pulse tube.
[0039] A fixed-length portion 410 of an inertance channel couples the pulse tube to the
inlet of a surge tank 412. The surge tank 412 has the structure shown in FIGURES 3A
and 3B. As shown here, part of the pulse tube fits within the hollow central section
of the surge tank 412, which can help to reduce the size of the overall system 400.
The system 400 also includes a heat rejection mechanism 414, which transfers heat
out of the system 400.
[0040] The surge tank 412 includes a variable-length portion of the inertance channel such
as those described above. Once the system 400 is placed into operation, the surge
tank 412 can be adjusted (such as via the adjusters 308) to alter the length of the
inertance channel in the surge tank 412. In this way, the length of the inertance
channel can be adjusted to tune the resonance frequency of the pulse tube to the frequency
of the compressor 402 and, if necessary, readjusted to tune the resonance frequency
of the pulse tube to a new frequency of the compressor 402.
[0041] Although FIGURES 4A and 4B illustrate one example of a system 400 containing a cryocooler
having a variable-length inertance channel for tuning the resonance of a pulse tube,
various changes may be made to FIGURES 4A and 4B. For example, the form factor of
each component shown here is for illustration only. Also, a variable-length inertance
channel could be used with a singe-stage cooling system or a cooling system with more
than two stages.
[0042] FIGURE 5 illustrates an example method 500 for providing cooling in a system using
a cryocooler having a variable-length inertance channel for tuning the resonance of
a pulse tube in accordance with this disclosure. As shown in FIGURE 5, a cryocooler
with a pulse tube is installed in a payload at step 502. The payload could represent
any larger device or system desiring or requiring cooling by the cryocooler. Example
payloads could include focal plane arrays, optical benches, or superconductive devices
that need cooling.
[0044] The inertance channel in the cryocooler is set to the desired length at step 508.
This could include, for example, altering the position of an adjustable seal within
the surge tank of the cryocooler. As a particular example, this could include using
the adjusters 308 to raise the seal in order to shorten the inertance channel or using
the adjusters 308 to lower the seal in order to lengthen the inertance channel.
[0045] The cryocooler is placed into operation at step 510. This could include, for example,
operating the compressor of the cryocooler at a specified drive frequency. Ideally,
the length of the inertance channel causes the pulse tube in the cryocooler to have
a resonance frequency that at least substantially matches the drive frequency of the
compressor. In particular embodiments, the inertance channel in the cryocooler is
set to the desired length at ambient temperature, placing the cryocooler into operation
causes the adjustable seal in the surge tank to fall in temperature, and different
materials having different coefficients of thermal expansion seal open sides of the
inertance channel at the lower temperature. In other particular embodiments, the inertance
channel in the cryocooler is set to the desired length at above-ambient temperature,
the cryocooler cooling to ambient temperature causes the adjustable seal in the surge
tank to fall in temperature, and different materials having different coefficients
of thermal expansion seal open sides of the inertance channel at the lower temperature.
In other embodiments, the inertance channel in the cryocooler is set by warming up
the adjustable inertance channel. Having a larger CTE housing and a lower or negative
CTE adjustable seal causes the housing to expand more than the adjustable seal, disconnecting
them to allow for adjustment. The temperature at which this occurs can depend on the
device's dimensions and the CTE difference.
[0046] A determination is made whether a frequency change of the compressor is needed at
step 512. A frequency change may be needed for various reasons. As described above,
one reason may be to change the compressor's drive frequency so that a resonant mode
of the payload is not at a harmonic of the compressor's drive frequency. If no frequency
change is needed, the cryocooler can continue operating at step 510. If a change in
frequency is needed, a new drive frequency of the compressor is identified at step
514. The process then returns to step 504, where the length of the inertance channel
can be changed to tune the resonance frequency of the pulse tube to the new drive
frequency of the compressor. In particular embodiments, the length of the inertance
channel in the cryocooler is changed at ambient temperature, and the surge volume
within the cryocooler is not opened to the ambient environment (meaning there is no
venting of the fluid even when the length of the inertance channel is changed).
[0047] Although FIGURE 5 illustrates one example of a method 500 for providing cooling in
a system using a cryocooler having a variable-length inertance channel for tuning
the resonance of a pulse tube, various changes may be made to FIGURE 5. For example,
while shown as a series of steps, various steps in FIGURE 5 could overlap, occur in
parallel, occur in a different order, or occur any number of times.
[0048] Note that in the above descriptions, it has been assumed that an inertance channel
is integrally formed within the inner wall of a surge tank. However, other embodiments
could also be used. For example, tubing with an open side could be placed along the
inner wall of a surge tank, and an adjustable seal could be used to seal at least
part of the open side of the tubing. Also note that an inertance channel could have
an open side along its entire length or along only part of its length, such as a small
part of its length near the end of the inertance channel.
[0049] It may be advantageous to set forth definitions of certain words and phrases used
throughout this patent document. The terms "include" and "comprise," as well as derivatives
thereof, mean inclusion without limitation. The term "or" is inclusive, meaning and/or.
The phrase "associated with," as well as derivatives thereof, may mean to include,
be included within, interconnect with, contain, be contained within, connect to or
with, couple to or with, be communicable with, cooperate with, interleave, juxtapose,
be proximate to, be bound to or with, have, have a property of, have a relationship
to or with, or the like. Directional terms such as "raise," "lower," "up," and "down"
refer to directions within the figures and do not require any particular directional
arrangement of components or directional use of a device.
[0050] While this disclosure has described certain embodiments and generally associated
methods, alterations and permutations of these embodiments and methods will be apparent
to those skilled in the art. Accordingly, the above description of example embodiments
does not define or constrain this disclosure. Other changes, substitutions, and alterations
are also possible without departing from the scope of this disclosure, as defined
by the following claims.
1. An apparatus comprising:
a surge tank (116; 216; 300) comprising a housing (302) that defines a surge volume
(118; 218; 310) configured to receive fluid from a cryocooler (100; 200); and
an inertance channel (120; 220; 312) defining a passageway through which the fluid
flows to and from the surge volume (118; 218; 310);
characterized by at least part of the inertance channel (120; 220; 312) having an open side to the
surge volume (118; 218; 310); and
the apparatus further comprising an adjustable seal (122; 222; 316) configured to
block at least part of the open side of the inertance channel (120; 220; 312), the
adjustable seal also configured to move in order to change a functional length of
the inertance channel(120; 220; 312).
2. The apparatus of Claim 1, wherein the surge tank (116; 216; 300) further comprises:
a lid (306) covering an interior space defined by the housing (302), the adjustable
seal (122; 222; 316) located within the interior space; and
an adjuster (308) through the lid (306), the adjuster (308) configured to change a
position of the adjustable seal (122; 222; 316).
3. The apparatus of Claim 2, wherein:
the lid (306) is sealed to the housing (302); and
the adjuster (308) is configured to change the position of the adjustable seal (122;
222; 316) without venting the interior space.
4. The apparatus of Claim 2, further comprising:
a flexible seal (318) between the lid (306) and the adjustable seal (122; 222; 316),
the flexible seal (318) configured to prevent leakage of fluid through an opening
in the lid (306), the adjuster (308) passing through the opening in the lid (306).
5. The apparatus of Claim 1, wherein:
the housing (302) comprises a material having a high coefficient of thermal expansion;
and
the adjustable seal (122; 222; 316) comprises a material having a low coefficient
of thermal expansion.
6. The apparatus of Claim 1, wherein the inertance channel (120; 220; 312) comprises
a channel in an inner wall of the housing (302).
7. The apparatus of Claim 1, wherein:
the housing (302) is cylindrical with a hollow central region (304) configured to
receive part of a pulse tube (112; 212); and
the adjustable seal (122; 222; 316) comprises a sealing can.
8. The apparatus of any preceding claim, further comprising:
a pulse tube (112; 212); and
a compressor (102; 202) configured to create pulses of fluid in the pulse tube (112;
212);
wherein the surge volume (118; 218; 310) is configured to receive the fluid from the
pulse tube (112; 212); and
wherein the surge tank (116; 216; 300) comprises the adjustable seal (122; 222; 316).
9. The apparatus of Claim 8, wherein the pulse tube (212) comprises one stage of a multi-stage
cooling system (200).
10. The apparatus of Claim 8, when dependent from claim 6, wherein:
the surge volume (118; 218; 310) comprises a cylindrical space; and
the inertance channel (120; 220; 312) comprises a spiral channel around the cylindrical
space.
11. The apparatus of Claim 8, wherein the inertance channel (120; 220; 312) comprises:
a first portion (120a; 220a) having a fixed functional length; and
a second portion (220a; 220b) having a variable functional length.
12. A method comprising:
identifying (504) a desired resonance frequency of a pulse tube (112; 212) in a cooling
system (100; 200), the desired resonance frequency associated with a drive frequency
of a compressor (102; 202) in the cooling system (100; 200); and
identifying (506) a desired length of an inertance channel (120; 220; 312) in the
cooling system (100; 200), the inertance channel (120; 220; 312) fluidly coupling
the pulse tube (112; 212) and a surge volume (118; 218; 310) in a surge tank (116;
216; 300);
characterized by at least part of the inertance channel (120; 220; 312) having an open side to the
surge volume (118; 218; 310); and
the method further comprising adjusting (508) a position of an adjustable seal (122;
222; 316) in the surge tank (116; 216; 300) based on the desired length of the inertance
channel (120; 220; 312), the adjustable seal (122; 222; 316) configured to block at
least part of the open side of the inertance channel (120; 220; 312), the adjustable
seal (122; 222; 316) also configured to move in order to change a functional length
of the inertance channel (120; 220; 312).
13. The method of Claim 12, wherein:
a housing of the surge tank (116; 216; 300) comprises a material having a high coefficient
of thermal expansion;
the adjustable seal (122; 222; 316) comprises a material having a low coefficient
of thermal expansion; and
the method further comprises cooling the surge tank (116; 216; 300) to cause the adjustable
seal (122; 222; 316) to block the at least part of the open side of the inertance
channel (120; 220; 312).
14. The method of Claim 12, further comprising:
readjusting the position of the adjustable seal (122; 222; 316) in the surge tank
(116; 216; 300) in order to alter a resonance frequency of the pulse tube (112; 212).
1. Vorrichtung, umfassend:
einen Ausgleichsbehälter (116; 216; 300), der ein Gehäuse (302) umfasst, das ein Ausgleichsvolumen
(118; 218; 310) definiert, das dazu eingerichtet ist, Fluid aus einem Kryokühler (100;
200) aufzunehmen; und
einen Inertanzkanal (120; 220; 312), der einen Durchlass definiert, durch den das
Fluid zu und aus dem Ausgleichsvolumen (118; 218; 310) fließt;
gekennzeichnet durch wenigstens einen Teil des Inertanzkanals (120; 220; 312), der eine zu dem Ausgleichsvolumen
(118; 218; 310) offene Seite besitzt; und
wobei die Vorrichtung weiter eine verstellbare Dichtung (122; 222; 316) umfasst, die
dazu eingerichtet ist, wenigstens einen Teil der offenen Seite des Inertanzkanals
(120; 220; 312) zu blockieren, wobei die verstellbare Dichtung ebenso dazu eingerichtet
ist, sich zu bewegen, um eine funktionelle Länge des Inertanzkanals (120; 220; 312)
zu verändern.
2. Vorrichtung nach Anspruch 1, wobei der Ausgleichsbehälter (116; 216; 300) weiter umfasst:
einen Deckel (306), der einen durch das Gehäuse (302) definierten Innenraum bedeckt,
wobei sich die verstellbare Dichtung (122; 222; 316) innerhalb des Innenraums befindet;
und
durch den Deckel (306) hindurch einen Versteller (308), wobei der Versteller (308)
dazu eingerichtet ist, eine Stellung der verstellbaren Dichtung (122; 222; 316) zu
verändern.
3. Vorrichtung nach Anspruch 2, wobei:
der Deckel (306) zu dem Gehäuse (302) hin abgedichtet ist; und
der Versteller (308) dazu eingerichtet ist, die Stellung der verstellbaren Dichtung
(122; 222; 316) ohne Entlüften des Innenraums zu verändern.
4. Vorrichtung nach Anspruch 2, weiter umfassend:
eine flexible Dichtung (318) zwischen dem Deckel (306) und der verstellbaren Dichtung
(122; 222; 316), wobei die flexible Dichtung (318) dazu eingerichtet ist, das Entweichen
von Fluid durch eine Öffnung in dem Deckel (306) hindurch zu verhindern, wobei der
Versteller (308) durch die Öffnung in dem Deckel (306) hindurchtritt.
5. Vorrichtung nach Anspruch 1, wobei:
das Gehäuse (302) ein Material umfasst, das einen hohen Wärmeausdehnungskoeffizienten
besitzt; und
die verstellbare Dichtung (122; 222; 316) ein Material umfasst, das einen niedrigen
Wärmeausdehnungskoeffizienten besitzt.
6. Vorrichtung nach Anspruch 1, wobei der Inertanzkanal (120; 220; 312) einen Kanal in
einer Innenwand des Gehäuses (302) umfasst.
7. Vorrichtung nach Anspruch 1, wobei:
das Gehäuse (302) zylindrisch mit einem hohlem Mittelbereich (304) ist, der dazu eingerichtet
ist, einen Teil eines Pulsrohres (112; 212) aufzunehmen; und
die verstellbare Dichtung (122; 222; 316) eine Dichtungsbuchse umfasst.
8. Vorrichtung nach einem vorhergehenden Anspruch, weiter umfassend:
ein Pulsrohr (112; 212); und
einen Kompressor (102; 202), der dazu eingerichtet ist, Fluidpulse in dem Pulsrohr
(112; 212) zu erzeugen;
wobei das Ausgleichsvolumen (118; 218, 310) dazu eingerichtet ist, das Fluid aus dem
Pulsrohr (112; 212) aufzunehmen; und
wobei der Ausgleichsbehälter (116; 216; 300) die verstellbare Dichtung (122; 222;
316) umfasst.
9. Vorrichtung nach Anspruch 8, wobei das Pulsrohr (212) eine Stufe eines mehrstufigen
Kühlsystems (200) umfasst.
10. Vorrichtung nach Anspruch 8, wenn abhängig von Anspruch 6, wobei:
das Ausgleichsvolumen (118; 218; 310) einen zylindrischen Raum umfasst; und
der Inertanzkanal (120; 220; 312) einen spiralförmigen Kanal um den zylindrischen
Raum herum umfasst.
11. Vorrichtung nach Anspruch 8, wobei der Inertanzkanal (120; 220; 312) umfasst:
einen ersten Abschnitt (120a; 220a), der eine feste funktionelle Länge besitzt; und
einen zweiten Abschnitt (220a; 220b), der eine variable funktionelle Länge besitzt.
12. Verfahren, umfassend:
Identifizieren (504) einer gewünschten Resonanzfrequenz eines Pulsrohres (112; 212)
in einem Kühlsystem (100; 200), wobei die gewünschte Resonanzfrequenz mit einer Antriebsfrequenz
eines Kompressors (102; 202) in dem Kühlsystem (100; 200) verknüpft ist; und
Identifizieren (506) einer gewünschten Länge eines Inertanzkanals (120; 220; 312)
in dem Kühlsystem (100; 200), wobei der Inertanzkanal (120; 220; 312) das Pulsrohr
(112; 212) und ein Ausgleichsvolumen (118; 218; 310) in einem Ausgleichsbehälter (116;
216; 300) fluidisch koppelt;
gekennzeichnet durch wenigstens einen Teil des Inertanzkanals (120; 220; 312), der eine zu dem Ausgleichsvolumen
(118; 218; 310) offene Seite besitzt; und
wobei das Verfahren weiter das Verstellen (508) einer Stellung einer verstellbaren
Dichtung (122; 222; 316) in dem Ausgleichsbehälter (116; 216; 300) basierend auf der
gewünschten Länge des Inertanzkanals (120; 220; 312) umfasst, wobei die verstellbare
Dichtung (122; 222; 316) dazu eingerichtet ist, wenigstens einen Teil der offenen
Seite des Inertanzkanals (120; 220; 312) zu blockieren, wobei die verstellbare Dichtung
(122; 222; 316) ebenfalls dazu eingerichtet ist, sich zu bewegen, um eine funktionelle
Länge des Inertanzkanals (120; 220; 312) zu verändern.
13. Verfahren nach Anspruch 12, wobei:
ein Gehäuse des Ausgleichsbehälters (116; 216; 300) ein Material umfasst, das einen
hohen Wärmeausdehnungskoeffizienten besitzt;
die verstellbare Dichtung (122; 222; 316) ein Material umfasst, das einen niedrigen
Wärmeausdehnungskoeffizienten besitzt; und
das Verfahren weiter das Kühlen des Ausgleichsbehälters (116; 216; 300) umfasst, um
die verstellbare Dichtung (122; 222; 316) dazu zu bringen, den wenigstens Teil der
offenen Seite des Inertanzkanals (120; 220; 312) zu blockieren.
14. Verfahren nach Anspruch 12, weiter umfassend:
Nachstellen der Stellung der verstellbaren Dichtung (122; 222; 316) in dem Ausgleichsbehälter
(116; 216; 300), um eine Resonanzfrequenz des Pulsrohres (112; 212) zu verändern.
1. Appareil comprenant :
un réservoir de compensation (116 ; 216 ; 300) comprenant un boîtier (302) qui définit
un volume de compensation (118 ; 218 ; 310) configuré pour recevoir un fluide d'un
refroidisseur cryogénique (100 ; 200) ; et
un canal d'inertance (120 ; 220 ; 312) définissant un passage à travers lequel le
fluide s'écoule vers le volume de compensation (118 ; 218 ; 310) et depuis ce dernier
;
caractérisé par au moins une partie du canal d'inertance (120 ; 220 ; 312) qui a un côté ouvert vers
le volume de compensation (118 ; 218 ; 310) ; et
l'appareil comprenant en outre un joint d'étanchéité ajustable (122 ; 222 ; 316) configuré
pour bloquer au moins une partie du côté ouvert du canal d'inertance (120 ; 220 ;
312), le joint d'étanchéité ajustable étant également configuré pour se déplacer en
sorte de changer la longueur fonctionnelle du canal d'inertance (120 ; 220 ; 312).
2. Appareil selon la revendication 1, dans lequel le réservoir de compensation (116 ;
216 ; 300) comprend en outre :
un couvercle (306) recouvrant un espace interne défini par le boîtier (302), le joint
d'étanchéité ajustable (122 ; 222 ; 316) étant situé à l'intérieur de l'espace interne
; et
un ajusteur (308) à travers le couvercle (306), l'ajusteur (308) étant configuré pour
changer la position du joint d'étanchéité ajustable (122 ; 222 ; 316).
3. Appareil selon la revendication 2, dans lequel :
le couvercle (306) est scellé au boîtier (302) ; et
l'ajusteur (308) est configuré pour changer la position du joint d'étanchéité ajustable
(122 ; 222 ; 316) sans purge de l'espace intérieur.
4. Appareil selon la revendication 2, comprenant en outre :
un joint d'étanchéité souple (318) entre le couvercle (306) et le joint d'étanchéité
ajustable (122 ; 222 ; 316), le joint d'étanchéité souple (318) étant configuré pour
empêcher une fuite de fluide à travers une ouverture dans le couvercle (306), l'ajusteur
(308) passant à travers l'ouverture du couvercle (306).
5. Appareil selon la revendication 1, dans lequel :
le boîtier (302) comprend un matériau ayant un coefficient de dilatation thermique
élevé ; et
le joint d'étanchéité ajustable (122 ; 222 ; 316) comprend un matériau ayant un faible
coefficient de dilatation thermique.
6. Appareil selon la revendication 1, dans lequel le canal d'inertance (120 ; 220 ; 312)
comprend un canal dans une paroi interne du boîtier (302).
7. Appareil selon la revendication 1, dans lequel :
le boîtier (302) est cylindrique avec une région centrale creuse (304) configurée
pour recevoir une partie d'un tube à impulsions (112 ; 212) ; et
le joint d'étanchéité ajustable (122 ; 222 ; 316) comprend une boîte d'étanchéité.
8. Appareil selon l'une quelconque des revendications précédentes, comprenant en outre
:
un tube à impulsions (112 ; 212) et
un compresseur (102 ; 202) configuré pour créer des impulsions de fluide dans le tube
à impulsions (112 ; 212) ;
dans lequel le volume de compensation (118 ; 218 ; 310) est configuré pour recevoir
le fluide du tube à impulsions (112 ; 212) ; et
dans lequel le réservoir de compensation (116 ; 216 ; 300) comprend le joint d'étanchéité
ajustable (122 ; 222 ; 316).
9. Appareil selon la revendication 8, dans lequel le tube à impulsions (212) comprend
un étage d'un système de refroidissement à étages multiples (200).
10. Appareil selon la revendication 8, lorsqu'elle dépend de la revendication 6, dans
lequel :
le volume de compensation (118 ; 218 ; 310) comprend un espace cylindrique ; et
le canal d'inertance (120 ; 220 ; 312) comprend un canal spiralé autour de l'espace
cylindrique.
11. Appareil selon la revendication 8, dans lequel le canal d'inertance (120 ; 220 ; 312)
comprend :
une première partie (120a ; 220a) ayant une longueur fonctionnelle fixe ; et
une seconde partie (220a ; 220b) ayant une longueur fonctionnelle variable.
12. Procédé comprenant :
l'identification (504) d'une fréquence de résonance souhaitée d'un tube à impulsions
(112 ; 212) dans un système de refroidissement (100 ; 200), la fréquence de résonance
souhaitée étant associée à une fréquence d'entraînement d'un compresseur (102 ; 202)
dans le système de refroidissement (100 ; 200) ; et
l'identification (506) d'une longueur souhaitée d'un canal d'inertance (120 ; 220
; 312) dans le système de refroidissement (100 ; 200), le canal d'inertance (120 ;
220 ; 312) couplant en communication fluidique le tube à impulsions (112 ; 212) et
un volume de compensation (118 ; 218 ; 310) dans un réservoir de compensation (116
; 216 ; 300) ;
caractérisé par au moins une partie du canal d'inertance (120 ; 220 ; 312) qui a un côté ouvert sur
le volume de compensation (118 ; 218 ; 310) ; et
le procédé comprenant en outre l'ajustement (508) d'une position d'un joint d'étanchéité
ajustable (122 ; 222 ; 316) dans le canal de compensation (116 ; 216 ; 300) sur la
base de la longueur souhaitée du canal d'inertance (120 ; 220 ; 312), le joint d'étanchéité
ajustable (122 ; 222 ; 316) étant configuré pour bloquer au moins une partie du côté
ouvert du canal d'inertance (120 ; 220 ; 312), le joint d'étanchéité ajustable (122
; 222 ; 316) étant également configuré pour se déplacer afin de changer la longueur
fonctionnelle du canal d'inertance (120 ; 220 ; 312).
13. Procédé selon la revendication 12, dans lequel :
un boîtier du réservoir de compensation (116 ; 216 ; 300) comprend un matériau ayant
un coefficient de dilatation thermique élevé ;
le joint d'étanchéité ajustable (122 ; 222 ; 316) comprend un matériau ayant un faible
coefficient de dilatation thermique ; et
le procédé comprend en outre le refroidissement du réservoir de compensation (116
; 216 ; 300) pour amener le joint d'étanchéité ajustable (122 ; 222 ; 316) à bloquer
la au moins une partie du côté ouvert du canal d'inertance (120 ; 220 ; 312).
14. Procédé selon la revendication 12, comprenant en outre :
le réajustement de la position du joint d'étanchéité ajustable (122 ; 222 ; 316) dans
le réservoir de compensation (116 ; 216 ; 300) afin de modifier la fréquence de résonance
du tube à impulsions (112 ; 212).